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hal.structure.identifierFribourg Center for Nanomaterials [FriMat]
hal.structure.identifierLaboratory for Neutron Scattering and Imaging [Paul Scherrer Institute] [LNS]
dc.contributor.authorHOPPLER, J.
hal.structure.identifierLaboratory for Neutron Scattering and Imaging [Paul Scherrer Institute] [LNS]
dc.contributor.authorSTAHN, J.
hal.structure.identifierLaboratory for Neutron Scattering and Imaging [Paul Scherrer Institute] [LNS]
dc.contributor.authorNIEDERMAYER, Ch.
hal.structure.identifierFribourg Center for Nanomaterials [FriMat]
dc.contributor.authorMALIK, V. K.
hal.structure.identifierDepartment of Physics [QMUL London]
hal.structure.identifierFribourg Center for Nanomaterials [FriMat]
hal.structure.identifierLaboratoire de Physique de la Matière Condensée - UR UPJV 2081 [LPMC]
dc.contributor.authorBOUYANFIF, Houssny
hal.structure.identifierFribourg Center for Nanomaterials [FriMat]
hal.structure.identifierLaboratoire de Physique de la Matière Condensée - UR UPJV 2081 [LPMC]
dc.contributor.authorDREW, A.
hal.structure.identifierFribourg Center for Nanomaterials [FriMat]
dc.contributor.authorRÖSSLE, M.
hal.structure.identifierCentre de physique moléculaire optique et hertzienne [CPMOH]
dc.contributor.authorBUZDIN, Alexandre I.
hal.structure.identifierMax-Planck-Institut für Festkörperforschung
dc.contributor.authorCRISTIANI, G.
hal.structure.identifierMax-Planck-Institut für Festkörperforschung
dc.contributor.authorHABERMEIER, H.-U.
hal.structure.identifierMax-Planck-Institut für Festkörperforschung
dc.contributor.authorKEIMER, B.
hal.structure.identifierFribourg Center for Nanomaterials [FriMat]
dc.contributor.authorBERNHARD, C.
dc.date.created2008-10-08
dc.date.issued2009-04
dc.identifier.issn1476-1122
dc.description.abstractEnArtificial multilayers offer unique opportunities for combining materials with antagonistic orders such as superconductivity and ferromagnetism and thus to realize novel quantum states(1,2). In particular, oxide multilayers enable the utilization of the high superconducting transition temperature of the cuprates and the versatile magnetic properties of the colossal-magnetoresistance manganites(3-6). However, apart from exploratory work(7-10), the in-depth investigation of their unusual properties has only just begun(11-15). Here we present neutron reflectometry measurements of a [Y0.6Pr0.4Ba2Cu3O7 (10 nm)/La2/3Ca1/3MnO3 (10 nm)](10) superlattice, which reveal a surprisingly large superconductivity-induced modulation of the vertical ferromagnetic magnetization profile. Most surprisingly, this modulation seems to involve the density rather than the orientation of the magnetization and is highly susceptible to the strain, which is transmitted from the SrTiO3 substrate. We outline a possible explanation of this unusual superconductivity-induced phenomenon in terms of a phase separation between ferromagnetic and non-ferromagnetic nanodomains in the La2/3Ca1/3MnO3 layers.
dc.language.isoen
dc.publisherNature Publishing Group
dc.title.enGiant superconductivity-induced modulation of the ferromagnetic magnetization in a cuprate–manganite superlattice
dc.typeArticle de revue
dc.identifier.doi10.1038/NMAT2383
dc.subject.halPhysique [physics]/Matière Condensée [cond-mat]/Supraconductivité [cond-mat.supr-con]
bordeaux.journalNature Materials
bordeaux.page315 - 319
bordeaux.volume8
bordeaux.issue4
bordeaux.peerReviewedoui
hal.identifierhal-00400773
hal.version1
hal.popularnon
hal.audienceInternationale
hal.origin.linkhttps://hal.archives-ouvertes.fr//hal-00400773v1
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